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Buoyancy and Stability for Submerged and Floating Bodies01:11

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In fluid mechanics, buoyancy and stability are key concepts for understanding the behavior of submerged and floating bodies. When a stationary body is fully or partially submerged in a fluid, the fluid exerts a force on the body known as the buoyant force. This force acts vertically upward through a point called the center of buoyancy, which is the center of the displaced fluid volume. According to Archimedes' principle, the magnitude of the buoyant force is equal to the weight of the fluid...
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Fluid mechanics model studies often utilize scaled-down systems to predict fluid behavior in full-scale environments, such as river flows, dam spillways, and structures interacting with open surfaces. Maintaining Froude number similarity in river models is crucial, as it replicates surface flow features like wave patterns and velocities.
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When a lump of clay is dropped into water, it sinks. But if the same lump of clay is molded into the shape of a boat, it starts to float. Because of its shape, the clay boat displaces more water than the lump and experiences a greater buoyant force, even though its mass is the same. The same holds true for steel ships. The average density of an object majorly determines if the object will float. If an object's average density is less than that of the surrounding fluid, it will float. The...
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The high speed of electrical signals results from the fact that the force between charges acts rapidly at a distance. Thus, when a free charge is forced into a wire, the incoming charge pushes other charges ahead due to the repulsive force between like charges. These moving charges move the charges farther down the line. The density of charge in a system cannot easily be increased, so the signal is passed on rapidly. The resulting electrical shock wave moves through the system at nearly the...
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An interesting force in everyday life is the force of drag on an object when it is moving in a fluid. Like friction, the drag force always opposes the motion of an object. Unlike simple friction, the drag force is proportional to some function of the velocity of the object in that fluid. This functionality is complicated and depends upon the shape of the object, its size, its velocity, and the fluid it is in. For most large objects, such as cyclists, cars, and baseballs, that are not moving too...
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Sampling, Sorting, and Characterizing Microplastics in Aquatic Environments with High Suspended Sediment Loads and Large Floating Debris
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漂移的巨型植物和塑料物体的沉积和拖动:一个模型.

Friederike Gronwald1, Florian Weinberger1, Tjeerd J Bouma2

  • 1Department of Marine Ecology, GEOMAR Helmholtz Centre for Ocean Research Kiel, 24148, Kiel, Germany.

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概括

准确的模型预测藻沉积和阻力至关重要. 这项研究开发了一种广泛适用的方法,使用简单的形状描述符来预测各种海藻物种和塑料的沉没速度.

关键词:
漂流海藻 漂流海藻宏观藻类的开花是很重要的.沉积 沉积 沉积 沉积 沉积

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科学领域:

  • 海洋生物学 海洋生物学
  • 水力动力学就是水力动力学.
  • 生态建模 生态建模

背景情况:

  • 预测大藻沉积和拖动对于生态和地化学建模以及海藻种植至关重要.
  • 目前的模型缺乏将巨植物的多样性形态及其水力动力学效应纳入的能力.

研究的目的:

  • 开发一种广泛适用的模型,用于预测宏藻沉积和拖动灵敏度.
  • 测试以圆体的形式近似不同的巨生物形态是否可以准确地预测它们的阻力反应.

主要方法:

  • 对于26种大藻类和草,使用了简单的形状描述符 (湿重,体积,体厚度,体投射面积).
  • 应用了对阻力方程的经验解决方案来预测沉降速度.
  • 将预测与静水中观察到的沉降速度进行了比较.

主要成果:

  • 使用圆近似和形状描述器的模型准确地预测了各种宏藻和鱼草的沉没速度.
  • 确定了第二个更简单的经验解决方案,适用于包括塑料在内的更广泛的粒子,准确度略低.

结论:

  • 简单的形状描述符和经验拖拉方程可以准确地预测宏藻沉没速度.
  • 这种方法为生态建模,地化学研究和优化海藻种植提供了有价值的工具.